Performance assessment of sustainable evacuated tube heat pipe solar collector driven seawater desalination system

Manish Sonkar, B. Kiran Naik
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Abstract

This study proposes a solar-powered humidification and dehumidification freshwater extraction system, analyzing its efficiency through heat transfer modeling. Despite extensive research on thermal desalination using various renewable energy sources, limited attention has been given to solar energy applications, particularly for humidification-dehumidification-based freshwater extraction and seawater recovery. The proposed system aims to be both economical and energy-efficient, leveraging low-grade solar energy for heating and utilizing natural water bodies as thermal reservoirs. The humidifier and condenser components were validated individually using data from existing literature, yielding an estimated maximum error of ±12 %. A parametric analysis highlights the impact of the exit temperature from an evacuated tube heat pipe solar collector on the system's performance, showing membrane energy exchange, water condenser energy exchange, and freshwater condensation rate of 0.91 kW/m2, 0.21 kW/m2, and 0.154 L/h-m², respectively, within the specified conditions and operating range. Performance analysis indicates that using cooling water from seawater, alongside enhanced effectiveness of condenser and optimized fluid flow rate ratio, improves the system's performance. The exit temperature from the solar collector emerges as a primary influence on the overall performance, and the correlation matrix of performance parameters is identified as a significant factor in system effectiveness. This research offers insights into solar-driven seawater recovery across various regions, acting as a reference for identifying solar energy hotspots.

Abstract Image

可持续真空管热管太阳能集热器驱动海水淡化系统性能评价
本研究提出了一种太阳能加湿和除湿淡水提取系统,并通过传热模型分析了其效率。尽管利用各种可再生能源对热脱盐进行了广泛的研究,但对太阳能应用的关注有限,特别是对以加湿-除湿为基础的淡水提取和海水回收。该系统旨在既经济又节能,利用低品位的太阳能供暖,并利用天然水体作为储热池。加湿器和冷凝器组件分别使用现有文献中的数据进行验证,估计最大误差为±12%。参数分析表明,真空管热管太阳能集热器出口温度对系统性能的影响,在规定条件和运行范围内,膜能交换、水冷凝器能交换和淡水冷凝速率分别为0.91 kW/m2、0.21 kW/m2和0.154 L/h-m²。性能分析表明,采用海水冷却水,提高冷凝器效率,优化流体流量比,提高了系统性能。太阳能集热器出口温度是影响系统整体性能的主要因素,性能参数的相关矩阵是影响系统效能的重要因素。该研究为不同地区的太阳能驱动海水回收提供了见解,为确定太阳能热点提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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